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非生物胁迫响应的泛组学见解:连接功能基因组学与精准作物育种

Pan-omics insights into abiotic stress responses: bridging functional genomics and precision crop breeding.

作者信息

Admas Tayachew, Jiao Shu, Pan Rui, Zhang Wenying

机构信息

Research Center of Crop Stresses Resistance Technologies/MARA Key Laboratory of Sustainable Crop Production in the Middle Reaches of the Yangtze River, Yangtze University, Jingzhou, 434025, China.

出版信息

Funct Integr Genomics. 2025 Jun 13;25(1):128. doi: 10.1007/s10142-025-01633-x.

Abstract

Crop production has been regarded as the major goal of agricultural activities, but the rapidly growing population and climate change have become more complex in the agricultural systems. Abiotic stress greatly affects crop productivity globally; developing more resilient crop varieties has become imperative. However, we can understand how plants tolerate abiotic stress better by using new methods that combine different scientific approaches like pan-genomics, pan-transcriptomics, pan-proteomics, pan-metabolomics, and pan-phenomics. Investigations using a pan-omics approach are necessary to consider the variation resulting from complex interactions among genes, proteins, metabolites, and regulatory networks within a species. A comparative study of core, dispensable, and unique components across different accessions assists in identifying novel genes, proteins, and metabolites responsible for stress tolerance. Moreover, databases and online repositories now enable the storage, analysis, and retrieval of data generated by high-throughput technologies. The combination provides guidelines for researchers to harness the potential of pan-omics in promoting sustainable agricultural practices. Therefore, the review focuses on recent trends in pan-omics for studying abiotic stress responses and their applications in crop improvement. It also highlights the application of artificial intelligence (AI) in data integration and monitoring crop environments.

摘要

作物生产一直被视为农业活动的主要目标,但人口的快速增长和气候变化使农业系统变得更加复杂。非生物胁迫对全球作物生产力有很大影响;培育更具抗逆性的作物品种已变得势在必行。然而,通过使用结合了泛基因组学、泛转录组学、泛蛋白质组学、泛代谢组学和泛表型组学等不同科学方法的新方法,我们能够更好地理解植物如何耐受非生物胁迫。采用泛组学方法进行研究,有必要考虑物种内基因、蛋白质、代谢物和调控网络之间复杂相互作用所产生的变异。对不同种质的核心、可有可无和独特成分进行比较研究,有助于识别出负责胁迫耐受性的新基因、蛋白质和代谢物。此外,数据库和在线资源库现在能够存储、分析和检索高通量技术产生的数据。这种结合为研究人员利用泛组学在促进可持续农业实践方面的潜力提供了指导方针。因此,本综述重点关注泛组学在研究非生物胁迫响应方面的最新趋势及其在作物改良中的应用。它还强调了人工智能(AI)在数据整合和监测作物环境中的应用。

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